(19)
(11) EP 2 574 604 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
02.11.2016 Bulletin 2016/44

(21) Application number: 12186439.1

(22) Date of filing: 27.09.2012
(51) International Patent Classification (IPC): 
C04B 35/589(2006.01)
C04B 35/80(2006.01)
C04B 35/591(2006.01)

(54)

Method for Fabricating Ceramic Material

Verfahren zur Herstellung eines Keramikmaterials

Procédé de fabrication de matériau céramique


(84) Designated Contracting States:
AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

(30) Priority: 30.09.2011 US 201113250084

(43) Date of publication of application:
03.04.2013 Bulletin 2013/14

(73) Proprietor: United Technologies Corporation
Farmington, CT 06032 (US)

(72) Inventors:
  • Kmetz, Michael A.
    Colchester, CT Connecticut 06415 (US)
  • Coons, Timothy P.
    Narragansett, RI Rhode Island 02882 (US)
  • Reutenauer, Justin W.
    Branford, CT Connecticut 06405 (US)

(74) Representative: Leckey, David Herbert 
Dehns St Bride's House 10 Salisbury Square
London EC4Y 8JD
London EC4Y 8JD (GB)


(56) References cited: : 
EP-A1- 0 412 428
US-A- 5 173 367
EP-A1- 2 308 811
   
  • STANTSCHEV G ET AL: "Long fibre reinforced ceramics with active fillers and a modified intra-matrix bond based on the LPI process", JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, ELSEVIER SCIENCE PUBLISHERS, BARKING, ESSEX, GB, vol. 25, no. 2-3, 1 January 2005 (2005-01-01), pages 205-209, XP027618212, ISSN: 0955-2219 [retrieved on 2005-01-01]
  • ZHENGFANG XIE ET AL: "Active Filler (Aluminum-Aluminum Nitride) Controlled Polycarbosilane Pyrolysis", JOURNAL OF INORGANIC AND ORGANOMETALLIC POLYMERS, KLUWER ACADEMIC PUBLISHERS-PLENUM PUBLISHERS, NE, vol. 16, no. 1, 7 June 2006 (2006-06-07), pages 69-81, XP019400795, ISSN: 1574-1451, DOI: 10.1007/S10904-006-9030-2
  • JESSICA D TORREY ET AL: "Composite polymer derived ceramic system for oxidizing environments", JOURNAL OF MATERIALS SCIENCE, KLUWER ACADEMIC PUBLISHERS, BO, vol. 41, no. 14, 30 June 2006 (2006-06-30) , pages 4617-4622, XP019399102, ISSN: 1573-4803, DOI: 10.1007/S10853-006-0242-1
 
Remarks:
The file contains technical information submitted after the application was filed and not included in this specification
 
Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


Description

BACKGROUND



[0001] This disclosure relates to ceramic processing and, more particularly, to ceramic processing using preceramic polymers. Ceramic materials are known and used for components such as coatings, ceramic bodies, and ceramic matrices. Many ceramic components are produced by powder processing and sintering. However, powder processing can limit the chemistry or microstructure of the ceramic component and it can be difficult to form complex geometry components in near net shape using powder processing.

[0002] A method having the features of the preamble of claim 1 is disclosed in EP-A-412428.

SUMMARY



[0003] According to the present invention, there is provided a method for a fabricating a ceramic material, as set forth in claim 1.

[0004] The reactive metallic filler material can be selected from aluminum metal, titanium metal and combinations thereof, and the mixture can be infiltrated into pores of a fibrous structure.

[0005] The mixture has up to 40 weight percent of the reactive metallic filler material, and the fibrous structure has coated fibers that define an average coating thickness. The amount of the reactive metallic filler material in the mixture and the average coating thickness are selected such that a ratio of the coating thickness to the amount of reactive metallic filler material is within a predetermined range.

BRIEF DESCRIPTION OF THE DRAWINGS



[0006] The various features and advantages of the disclosed examples will become apparent to those skilled in the art from the following detailed description. The drawings that accompany the detailed description can be briefly described as follows.

Figure 1 shows an example method for fabricating a ceramic material.

Figure 2 shows a micrograph of a ceramic material fabricated according to the method shown in Figure 1.

Figure 3 shows the ceramic material of Figure 2 at a greater magnification.

Figure 4 shows a micrograph of a fracture surface of a ceramic material fabricated according to the method shown in Figure 1.


DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT



[0007] Figure 1 illustrates selected portions of an example method 20 for fabricating a ceramic material. As described below, the exemplary method 20 utilizes a preceramic polymer and provides the ability to fabricate near net shape ceramic components with complex geometries, unique chemistries and/or unique microstructures.
step 24 and a thermal treatment step 26. It is to be understood, however, that the illustrated steps 22, 24 and 26 may include sub-steps or may be combined with other steps in the processing of a ceramic material.

[0008] The mixture step 22 includes providing a mixture of a reactive metallic filler material with a preceramic polysilazane material. In one example, the mixture is premade and the action of providing the mixture entails obtaining the mixture for use in the subsequent steps 24 and 26. Alternatively, the mixture step 22 includes the action of mixing the reactive metallic filler material with the preceramic polysilazane material. For instance, a predetermined amount of the reactive filler material is added to a predetermined amount of the preceramic polysilazane material and stirred over heat. The mixture is stirred until the reactive metallic filler material is uniformly dispersed throughout the preceramic polysilazane material. Optionally, the mixing is conducted in an inert environment, such as under vacuum or in an inert, substantially oxygen-free cover gas to limit exposure of the reactive metal filler material to air and moisture.

[0009] The selected reactive metallic filler material is reactive with regard to the selected preceramic polysilazane material. That is, during subsequent processing to convert the preceramic polysilazane material into ceramic material, the reactive metallic filler material and the preceramic polysilazane material react to form a ceramic phase in the final ceramic material. In one example, the reactive metallic filler material is selected from aluminum metal, titanium metal or combinations thereof.

[0010] In a further example, the amount of the reactive metallic filler material is selected such that the material is generally uniformly dispersed through the preceramic polysilazane material. The reactive metallic filler material, such as aluminum powder or titanium powder, tends to settle to the bottom of the mixture due to gravitational forces. Thus, if the amount is too high, at least a portion of the reactive metallic filler material will sink to bottom and the final ceramic material will ultimately have poor mechanical integrity. The mixture has up to 40 weight percent of the reactive metallic filler material. In a further example, the mixture has 10 - 30 weight percent, and in another example the mixture has 15-25 weight percent, such as approximately 20 weight percent.

[0011] In a further embodiment, the reactive metallic filler material is a metallic powder that has a preselected average particle size. The selected average particle size is a balance between the reactivity of the powder and the ability of the powder to be suspended in mixture with the preceramic polysilazane material. For instance, if the average particle size is relatively large, the particles are relatively less reactive with the preceramic polysilazane material and tend to sink to the bottom of the mixture. On the other hand, if the particles are very small, the powder has less of a tendency to sink in the mixture but is more reactive with moisture or oxygen from the surrounding environment. Given this description, one of ordinary skill in the art will be able to identify suitable average particle sizes for their intended application and process. In one example, the reactive metallic filler material is aluminum powder, titanium powder or a mixture thereof and the average particle size is 5 - 30 micrometers. In a further embodiment, the average particle size is 13 - 17 micrometers.

[0012] The preceramic polysilazane material is a polymer or oligomer ceramic precursor in which silicon and nitrogen atoms are bonded to each other to form the basic backbone of the material. As an example, the preceramic polymer is hydridopolysilazane, which decomposes in a nitrogen-containing atmosphere to predominantly silicon carbonitride (SiNC). In some embodiments, the preceramic polysilazane material includes only the polymer or oligomer silicon/nitrogen structure. Alternatively, the preceramic polysilazane material includes additives to enhance or change the processing or ceramic material properties. In one example, the preceramic polysilazane material includes a catalyst material, such as dicumyl peroxide, that modifies the processing temperatures at which the material is polymerized and/or pyrolyzed.

[0013] As indicated above, additional steps may be used in combination with the steps of the method 20. Thus, it is contemplated that the method 20 include one or more additional steps to form the mixture for the desired end use, such as, but not limited to, coatings, monolithic components, fiber-reinforced components, etc. In one example, the method 20 additionally includes infiltrating the mixture into pores of a fibrous structure. For example, the fibrous structure is a stack of continuous fiber sheets or a three-dimensional preform. In a further example, a plurality of fibrous sheets are impregnated with the mixture and then arranged in a desired orientation relative to one another (e.g., cross-plied). The stack is then heated to polymerize the preceramic polymer. The process is not limited to any particular technique, but in some examples, a vacuum bag technique or hot press technique is used.

[0014] The fibers of fibrous structure are selected for the intended end use. In some examples, the fibers are ceramic or carbon fibers. In further examples, the fibers are oxide or non-oxide ceramic fibers. In additional embodiments, the fibers are or include glass, carbide, nitride, boride, carbonitride, carboboride, boronitride or the like. In embodiments, the fibers are or include a silicon-containing ceramic material, such as silicon carbide.

[0015] In a further example, the fibers are non-oxide ceramic fibers, which are susceptible to oxidation under relatively severe end use operating conditions such as those found in turbine engines. Thus, in some examples, the fibers are coated by known techniques with a protective coating that serves as a getter material to intercept oxygen, as an oxygen barrier or both.

[0016] In a further example, the protective coating is a multi-layer coating that includes at least a layer of a first ceramic material and a layer of a second ceramic material. For instance, the coating includes a boron nitride (BN) layer directly on the perimeter surface of the fibers and a silicon nitride layer (Si3N4) over the boron nitride layer. That is, the boron nitride layer is between the silicon nitride layer and the fibers. In other examples, the protective coating can include additional layers or alternating layers of boron nitride and silicon nitride. In embodiments, the layer of boron nitride has a thickness of approximately 300 - 500 nanometers and the layer of silicon nitride has an average thickness of approximately 75 - 600 nanometers. In further examples, the average thickness of the silicon nitride layer is 75, 150 or 225 nanometers. Given this description, one of ordinary skill in the art will be able to select other suitable thicknesses for the layers to meet their particular needs.

[0017] Turning to the polymerization step 24, the mixture of the reactive metallic filler material and the preceramic polysilazane material is polymerized to form a green body. A "green body" refers to the preceramic compound prior to thermal treatment to consolidate or form the ceramic material. In one example, the polymerization step 24 includes heating the mixture at a first temperature to polymerize (e.g., crosslink) the preceramic polysilazane material. That is, the heating "sets" the mixture. The selected temperature depends upon the particular polysilazane material that is selected and whether the material contains a catalyst. In general, the polymerization temperature is within a range of approximately 100 - 300°C (212 - 572°F).

[0018] After polymerization, the green body is thermally treated at step 26 in an environment that is substantially free of oxygen to convert the polymerized preceramic polysilazane material into a ceramic material. That is, the process environment includes only trace amounts of oxygen in the selected process gas or gases. The processing environment and process temperature selected depends on the desired end ceramic material. For example, in a nitrogen-containing environment, the preceramic polymer generally decomposes to form silicon carbonitride. With lower nitrogen concentration or a substantial absence of nitrogen, other phases can be more predominantly formed, such as silicon carbide.

[0019] In embodiments, the thermal treatment is conducted at a temperature of approximately 800 - 1200°C (1472 - 2192°F). However, the selected temperature depends on the selected preceramic polymer, the desired decomposition products and fiber composition (if used). In one example, a silicon carbide fiber structure with a multi-layer protective coating of boron nitride/silicon nitride was infiltrated with the mixture described above having aluminum metal powder to produce a green body. The green body was treated in a hot wall reactor by heating to 900°C / 1652°F at a heating rate of 2.5°C/minute under flowing nitrogen. Upon reaching the target temperature, the target temperature was held for a soak time of approximately one hour.

[0020] In a further example, the steps of infiltration and thermal treatment are repeated between two and ten cycles to form a fully dense ceramic material. In one variation, the initial infiltration is conducted with the mixture described above and subsequent infiltrations are conducted with "undoped" preceramic polymer that does not include any of the reactive metallic filler material. A substantial portion of the weight gain of the structure occurs in the initial cycle and further infiltrations with the mixture thus only add a limited amount of additional reactive metallic filler material. In one example using a silicon carbide fiber structure with a multi-layer protective coating of boron nitride/silicon nitride, aluminum metal powder and hydridopolysilazane, the final density was approximately 1.6 - 2.0 grams per cubic centimeter. Subsequent cycles can alternatively be conducted with the mixture if there is a desire to maximize the amount of reactive metallic filler material.

[0021] During the thermal treatment step 26, the reactive metallic filler material reacts with the preceramic polysilazane material to form at least one nitride phase. Thus, the nitride phase is a reaction product of the reactive metallic filler material and the preceramic polysilazane material. The chemistry of the nitride phase that is formed depends upon the selected thermal treatment temperature, selected process gas, selected reactive metallic filler material and selected preceramic polysilazane material, for example.

[0022] In one example using nitrogen process gas at the disclosed thermal treatment temperature and hydridopolysilazane as the preceramic polymer, the nitride phase includes aluminum nitride (AlN) when reactive metallic filler material includes aluminum metal. The formation of aluminum nitride causes a volume expansion, which is expected to increase the density of the ceramic material and reduce microcracking. In a similar example, the nitride phase includes titanium nitride (TiN) when the reactive metallic filler material includes titanium metal.

[0023] The reaction between the reactive metallic filler material and the preceramic polysilazane material also produces other ceramic or non-ceramic phases, such as silicon carbide, titanium carbide, silicides of the reactive metal, and free silicon metal. Thus, the method 20 permits the use of free silicon metal in fibrous ceramic materials without having to melt and infiltrate the silicon metal in the fibrous structure. With non-oxide fibers in particular, such as silicon carbide, the high melting and processing temperature of silicon metal (approximately 1415°C / 2579°F) damages the fibers.

[0024] In embodiments that utilize a fibrous structure, the thermal treatment can also cause reactions between the reactive metallic filler material and the fibers or protective coating. In one example where the coated fibers include the multi-layer coating of boron nitride and silicon nitride, the reactive metallic filler material reacts with the silicon nitride layer to the detriment of the strength of the composite that is formed. In some examples, to mitigate the effects of the reaction, a thicker-than-normal silicon nitride layer was used.

[0025] The effect of the reaction between the reactive metallic filler material and the silicon nitride layer is mitigated by selecting a predetermined ratio between the average thickness of the silicon nitride layer and the amount of reactive metallic filler material that is used. The amount in weight percent of reactive metallic filler material represented by the variable X and the average coating thickness in nanometers represented by the variable tcoating are selected such that a ratio of tcoating/X (average coating thickness divided by weight percent of the reactive filler material) is from 3.75 to 25. In an example, the ratio is from 10 to 20. Thus, the ratio represents a desirable balance between the amount of reactive metallic filler material and the average thickness of the coating that is needed to mitigate the effects of the reaction between the reactive metallic filler material and the coating.

[0026] Figure 2 illustrates a micrograph of a ceramic material that was fabricated according to the method 20 described above. In this example, the ceramic material includes fibers 30 that are generally embedded within a matrix 32. As also seen at higher magnification in Figure 3, the fibers 30 in this example are coated and include a boron nitride layer 34 that is directly on the surfaces of the fibers 30 and a silicon nitride layer 36 over the boron nitride layer 34.

[0027] Figure 4 shows a micrograph of a fracture surface of the ceramic material. As shown, the matrix 32 includes several reaction zones 38 (darker areas) where the reactive metallic filler material has reacted with the preceramic polysilazane material to form at least one nitride phase. The illustrated example also shows a reaction zone 40 at an interface between the matrix 32 and the silicon nitride layer 36 where the reactive metallic filler material reacted with the silicon nitride layer 36.

[0028] Although a combination of features is shown in the illustrated examples, not all of them need to be combined to realize the benefits of various embodiments of this disclosure. In other words, a system designed according to an embodiment of this disclosure will not necessarily include all of the features shown in any one of the Figures or all of the portions schematically shown in the Figures. Moreover, selected features of one example embodiment may be combined with selected features of other example embodiments.

[0029] The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this disclosure. The scope of legal protection given to this disclosure can only be determined by studying the following claims.


Claims

1. A method for fabricating a ceramic material, the method comprising:

providing a mixture of a reactive metallic filler material with a preceramic polysilazane material;

polymerizing the preceramic polysilazane material to form a green body; and

thermally treating the green body in an environment that is substantially free of oxygen to convert the polymerized preceramic polysilazane material into a ceramic material including at least one nitride phase that is a reaction product of the reactive metallic filler material and the preceramic polysilazane material; and characterised by:

infiltrating the mixture into pores of a fibrous structure, wherein said fibrous structure has coated fibers (30), wherein the coating on the coated fibers (30) has an average coating thickness, represented as a variable tcoating (nanometers) and the mixture has an amount, represented by a variable X (weight percent), of the reactive metallic filler material, wherein X and tcoating are selected such that a ratio of tcoating/X (average coating thickness in nanometers divided by weight percent of the reactive filler material) is from 3.75 to 25, and the mixture has an amount of up to 40 weight percent of the reactive metallic filler material; and

wherein the coating includes a layer of silicon nitride (36) that is in contact with the mixture upon infiltration of the mixture into the pores, and the average coating thickness is of the layer of silicon nitride (36).


 
2. The method as recited in claim 1, wherein the reactive metallic filler material is selected from a group consisting of aluminum metal, titanium metal and combinations thereof.
 
3. The method as recited in claim 2, wherein the nitride phase includes aluminum nitride if the reactive metallic filler material includes aluminum metal, and the nitride phase includes titanium nitride if the reactive metallic filler material includes titanium metal.
 
4. The method as recited in any preceding claim, wherein the thermal treating of the green body reacts the reactive metallic filler material with the preceramic polysilazane material to produce free silicon metal.
 
5. The method as recited in any preceding claim, including polymerizing the preceramic polysilazane material at a first temperature, and thermally treating the green body at a second, higher temperature.
 
6. The method as recited in any preceding claim, wherein the amount is 10-30 weight percent.
 
7. The method as recited in any of claims 1 to 5, wherein the amount is 15-25 weight percent.
 
8. The method as recited in any preceding claim, wherein the coating includes a layer of boron nitride (34) that is located between the layer of silicon nitride (36) and the fibers (30).
 
9. The method as recited in any preceding claim, wherein the ratio is from 10 to 20.
 
10. The method as recited in any preceding claim, wherein the reactive metallic filler material is aluminum metal.
 
11. The method as recited in any preceding claim, wherein the reactive filler material is aluminum powder that has an average particle size of 5 - 30 micrometers.
 


Ansprüche

1. Verfahren zur Herstellung eines Keramikmaterials, das Folgendes umfasst:

Bereitstellen eines Gemisches eines reaktiven metallischen Füllstoffes mit einem präkeramischen Polysilazanmaterial;

Polymerisieren des präkeramischen Polysilazanmaterials zur Bildung eines Grünkörpers; und

thermisches Behandeln des Grünkörpers in einer Umgebung, die im Wesentlichen frei von Sauerstoff ist, um das polymerisierte präkeramische Polysilazanmaterial in ein Keramikmaterial umzuwandeln, das mindestens eine Nitridphase umfasst, die ein Reaktionsprodukt des reaktiven metallischen Füllstoffmaterials und des präkeramischen Polysilazanmaterials ist; und das gekennzeichnet ist durch:

Infiltrieren des Gemisches in Poren einer Faserstruktur, wobei die Faserstruktur beschichtete Fasern (30) aufweist, wobei die Beschichtung auf den beschichteten Fasern (30) eine durchschnittliche Beschichtungsdicke aufweist, die als eine Variable tBeschichtung (Nanometer) dargestellt wird, und das Gemisch eine Menge des reaktiven metallischen Füllstoffes enthält, die durch eine Variable X (Gewichtsprozent) dargestellt wird, wobei X und tBeschichtung so ausgewählt sind, dass ein Verhältnis von tBeschichtung/X (durchschnittliche Beschichtungsdicke in Nanometern geteilt durch Menge des reaktiven Füllstoffes in Gewichtsprozent) im Bereich von 3,75 bis 25 liegt, und das Gemisch eine Menge von bis zu 40 Gewichtsprozent des reaktiven metallischen Füllstoffes enthält; und

wobei die Beschichtung eine Schicht aus Siliciumnitrid (36) enthält, die nach Infiltration des Gemisches in die Poren in Kontakt mit dem Gemisch steht, und die durchschnittliche Beschichtungsdicke jene der Schicht aus Siliciumnitrid (36) ist.


 
2. Verfahren nach Anspruch 1, wobei der reaktive metallische Füllstoff aus der Gruppe ausgewählt ist, die aus Aluminiummetall, Titanmetall und Kombinationen davon besteht.
 
3. Verfahren nach Anspruch 2, wobei die Nitridphase Aluminiumnitrid umfasst, wenn der reaktive metallische Füllstoff Aluminiummetall umfasst, und die Nitridphase Titannitrid umfasst, wenn der reaktive metallische Füllstoff Titanmetall umfasst.
 
4. Verfahren nach einem der vorangehenden Ansprüche, wobei das thermische Behandeln des Grünkörpers den reaktiven metallischen Füllstoff mit dem präkeramischen Polysilazanmaterial zur Reaktion bringt, um freies Siliciummetall zu bilden.
 
5. Verfahren nach einem der vorangehenden Ansprüche, welches das Polymerisieren des präkeramischen Polysilazanmaterials bei einer ersten Temperatur und das thermische Behandeln des Grünkörpers bei einer zweiten, höheren Temperatur umfasst.
 
6. Verfahren nach einem der vorangehenden Ansprüche, wobei die Menge 10-30 Gewichtsprozent beträgt.
 
7. Verfahren nach einem der Ansprüche 1 bis 5, wobei die Menge 15-25 Gewichtsprozent beträgt.
 
8. Verfahren nach einem der vorangehenden Ansprüche, wobei die Beschichtung eine Schicht aus Bornitrid (34) umfasst, die sich zwischen der Schicht aus Siliciumnitrid (36) und den Fasern (30) befindet.
 
9. Verfahren nach einem der vorangehenden Ansprüche, wobei das Verhältnis im Bereich von 10 bis 20 liegt.
 
10. Verfahren nach einem der vorangehenden Ansprüche, wobei der reaktive metallische Füllstoff Aluminiummetall ist.
 
11. Verfahren nach einem der vorangehenden Ansprüche, wobei der reaktive Füllstoff Aluminiumpulver mit einer durchschnittlichen Partikelgröße von 5-30 Mikrometern ist.
 


Revendications

1. Procédé de fabrication d'un matériau céramique, le procédé comprenant :

la fourniture d'un mélange d'un matériau de remplissage métallique réactif avec un matériau de polysilazane précéramique ;

la polymérisation du matériau de polysilazane précéramique pour former un corps vert ; et

le traitement thermique du corps vert dans un environnement qui est sensiblement dépourvu d'oxygène pour convertir le matériau de polysilazane précéramique polymérisé en un matériau céramique comprenant au moins une phase nitrure qui est un produit de réaction du matériau de remplissage métallique réactif et du matériau de polysilazane précéramique ; et caractérisé par ;

l'infiltration du mélange dans des pores d'une structure fibreuse, dans lequel ladite structure fibreuse a des fibres enrobées (30), dans lequel le revêtement sur les fibres enrobées (30) a une épaisseur de revêtement moyenne, représentée comme une variable tcoating (nanomètres) et le mélange a une quantité, représentée par une variable X (pourcentage en poids), du matériau de remplissage métallique réactif, dans lequel X et tcoating sont sélectionnés de sorte qu'un rapport de tcoating/X (épaisseur de revêtement moyenne en nanomètres divisée par pourcentage en poids du matériau de remplissage réactif) est compris entre 3,75 et 25, et le mélange a une quantité de jusqu'à 40 pour cent en poids du matériau de remplissage métallique réactif ; et

dans lequel le revêtement comprend une couche de nitrure de silicium (36) qui est en contact avec le mélange lors de l'infiltration du mélange dans les pores, et l'épaisseur de revêtement moyenne est celle de la couche de nitrure de silicium (36).


 
2. Procédé selon la revendication 1, dans lequel le matériau de remplissage métallique réactif est sélectionné parmi un groupe constitué d'aluminium métallique, de métal de titane et de combinaisons de ceux-ci.
 
3. Procédé selon la revendication 2, dans lequel la phase nitrure comprend du nitrure d'aluminium si le matériau de remplissage métallique réactif comprend de l'aluminium métallique, et la phase nitrure comprend du nitrure de titane si le matériau de remplissage métallique réactif comprend du métal de titane.
 
4. Procédé selon une quelconque revendication précédente, dans lequel le traitement thermique du corps vert fait réagir le matériau de remplissage métallique réactif avec le matériau de polysilazane précéramique pour produire du métal de silicium libre.
 
5. Procédé selon une quelconque revendication précédente, comprenant la polymérisation du matériau de polysilazane précéramique à une première température, et le traitement thermique du corps vert à une seconde température plus élevée.
 
6. Procédé selon une quelconque revendication précédente, dans lequel la quantité est de 10 à 30 pour cent en poids.
 
7. Procédé selon l'une quelconque des revendications 1 à 5, dans lequel la quantité est de 15 à 25 pour cent en poids.
 
8. Procédé selon une quelconque revendication précédente, dans lequel le revêtement comprend une couche de nitrure de bore (34) qui est située entre la couche de nitrure de silicium (36) et les fibres (30).
 
9. Procédé selon une quelconque revendication précédente, dans lequel le rapport est compris entre 10 et 20.
 
10. Procédé selon une quelconque revendication précédente, dans lequel le matériau de remplissage métallique réactif est de l'aluminium métallique.
 
11. Procédé selon une quelconque revendication précédente, dans lequel le matériau de remplissage réactif est de la poudre d'aluminium qui a une taille de particule moyenne de 5 à 30 micromètres.
 




Drawing











Cited references

REFERENCES CITED IN THE DESCRIPTION



This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.

Patent documents cited in the description